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A Computationally Efficient Method for Sequential MAP-MRF Cloud Detection

机译:序列MAP-MRF云检测的一种高效计算方法

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In this paper we present a cloud detection algorithm exploiting both the spatial and the temporal correlation of cloudy images. A region matching technique for cloud motion estimation is embodied into a MAP-MRF framework through a penalty term. We test our proposal both on simulated data and on real images acquired by MSG satellite sensors (SEVIRI) in the VIS 0.8 band. Comparisons with classical MRF based algorithms show our approach to achieve better results in terms of misclassification probability and, in particular, to be very effective in detecting cloud edges.
机译:在本文中,我们提出了一种利用云图像的时空相关性的云检测算法。通过惩罚项将用于云运动估计的区域匹配技术体现在MAP-MRF框架中。我们在VIS 0.8波段的模拟数据和MSG卫星传感器(SEVIRI)采集的真实图像上测试了我们的建议。与基于经典MRF的算法的比较表明,我们的方法可以在误分类概率方面取得更好的结果,尤其是在检测云边缘方面非常有效。

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